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18 g of glucose (C6H12O6) is added to 178.2 g of water. The vapour pressure of water for this aqueous solution at 100º C is - [AIEEE 2006]
- a)7.60 Torr
- b)76.00 Torr
- c)752.40 Torr
- d)759.00 Torr
Correct answer is option 'C'. Can you explain this answer?
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Verified Answer
18 g of glucose (C6H12O6) is added to 178.2 g of water. The vapour pre...
Molecular mass of water = 2x1 + 1x16 = 18 g
For 178.2 g water, nA = 9.9
Molecular mass of glucose = 6x12 + 12x1 + 6x16 = 180 g
For 18 g glucose, nB = 0.1
XB = 0.1/(0.1+9.9) = 0.01
XA = 0.99
For lowering of vapour pressure,
P = p0AXA = p0A(1 – XB)
P = 760(1 – 0.01)
= 760 - 7.6
= 752.4 torr
The correct option is B.
Most Upvoted Answer
18 g of glucose (C6H12O6) is added to 178.2 g of water. The vapour pre...
°C is 96.535 mmHg. The vapor pressure of pure water at the same temperature is 760 mmHg. Calculate the vapor pressure of the solution and the boiling point elevation constant (Kb) for water.
To solve this problem, we need to use the equation:
ΔTb = Kb * molality
where ΔTb is the boiling point elevation, Kb is the boiling point elevation constant, and molality is the molal concentration of the solution.
First, we need to calculate the molality of the solution:
molality = moles of solute / mass of solvent (in kg)
We are given the mass of glucose (18 g) and the mass of water (178.2 g). To convert the mass of water to kg, we divide by 1000:
mass of water = 178.2 g / 1000 = 0.1782 kg
Next, we need to calculate the number of moles of glucose:
moles of glucose = mass of glucose / molar mass of glucose
The molar mass of glucose (C6H12O6) is:
6 * 12.01 g/mol + 12 * 1.01 g/mol + 6 * 16.00 g/mol = 180.18 g/mol
So the number of moles of glucose is:
moles of glucose = 18 g / 180.18 g/mol = 0.0999 mol
Now we can calculate the molality:
molality = 0.0999 mol / 0.1782 kg = 0.560 mol/kg
Next, we can use the following equation to calculate the vapor pressure of the solution:
P = Xsolvent * Psolvent
where P is the vapor pressure of the solution, Xsolvent is the mole fraction of the solvent (water), and Psolvent is the vapor pressure of pure water at the same temperature.
We can assume that the glucose does not contribute significantly to the vapor pressure, so Xsolvent is approximately equal to 1 (i.e. water is the only solvent). Therefore:
P = Psolvent = 96.535 mmHg
Finally, we can use the boiling point elevation equation to calculate Kb:
ΔTb = Kb * molality
We are given that the boiling point elevation (ΔTb) is equal to the difference between the boiling point of the solution and the boiling point of pure water, which is 100°C. Therefore:
ΔTb = 100°C - 100°C = 0°C
Substituting into the equation, we get:
0°C = Kb * 0.560 mol/kg
Kb = 0°C / 0.560 mol/kg = 0°C/m
Therefore, the boiling point elevation constant (Kb) for water is 0°C/m.
To solve this problem, we need to use the equation:
ΔTb = Kb * molality
where ΔTb is the boiling point elevation, Kb is the boiling point elevation constant, and molality is the molal concentration of the solution.
First, we need to calculate the molality of the solution:
molality = moles of solute / mass of solvent (in kg)
We are given the mass of glucose (18 g) and the mass of water (178.2 g). To convert the mass of water to kg, we divide by 1000:
mass of water = 178.2 g / 1000 = 0.1782 kg
Next, we need to calculate the number of moles of glucose:
moles of glucose = mass of glucose / molar mass of glucose
The molar mass of glucose (C6H12O6) is:
6 * 12.01 g/mol + 12 * 1.01 g/mol + 6 * 16.00 g/mol = 180.18 g/mol
So the number of moles of glucose is:
moles of glucose = 18 g / 180.18 g/mol = 0.0999 mol
Now we can calculate the molality:
molality = 0.0999 mol / 0.1782 kg = 0.560 mol/kg
Next, we can use the following equation to calculate the vapor pressure of the solution:
P = Xsolvent * Psolvent
where P is the vapor pressure of the solution, Xsolvent is the mole fraction of the solvent (water), and Psolvent is the vapor pressure of pure water at the same temperature.
We can assume that the glucose does not contribute significantly to the vapor pressure, so Xsolvent is approximately equal to 1 (i.e. water is the only solvent). Therefore:
P = Psolvent = 96.535 mmHg
Finally, we can use the boiling point elevation equation to calculate Kb:
ΔTb = Kb * molality
We are given that the boiling point elevation (ΔTb) is equal to the difference between the boiling point of the solution and the boiling point of pure water, which is 100°C. Therefore:
ΔTb = 100°C - 100°C = 0°C
Substituting into the equation, we get:
0°C = Kb * 0.560 mol/kg
Kb = 0°C / 0.560 mol/kg = 0°C/m
Therefore, the boiling point elevation constant (Kb) for water is 0°C/m.
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18 g of glucose (C6H12O6) is added to 178.2 g of water. The vapour pressure of water for this aqueous solution at 100º C is - [AIEEE 2006]a)7.60 Torrb)76.00 Torrc)752.40 Torrd)759.00 TorrCorrect answer is option 'C'. Can you explain this answer?
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18 g of glucose (C6H12O6) is added to 178.2 g of water. The vapour pressure of water for this aqueous solution at 100º C is - [AIEEE 2006]a)7.60 Torrb)76.00 Torrc)752.40 Torrd)759.00 TorrCorrect answer is option 'C'. Can you explain this answer? for Class 12 2024 is part of Class 12 preparation. The Question and answers have been prepared according to the Class 12 exam syllabus. Information about 18 g of glucose (C6H12O6) is added to 178.2 g of water. The vapour pressure of water for this aqueous solution at 100º C is - [AIEEE 2006]a)7.60 Torrb)76.00 Torrc)752.40 Torrd)759.00 TorrCorrect answer is option 'C'. Can you explain this answer? covers all topics & solutions for Class 12 2024 Exam. Find important definitions, questions, meanings, examples, exercises and tests below for 18 g of glucose (C6H12O6) is added to 178.2 g of water. The vapour pressure of water for this aqueous solution at 100º C is - [AIEEE 2006]a)7.60 Torrb)76.00 Torrc)752.40 Torrd)759.00 TorrCorrect answer is option 'C'. Can you explain this answer?.
18 g of glucose (C6H12O6) is added to 178.2 g of water. The vapour pressure of water for this aqueous solution at 100º C is - [AIEEE 2006]a)7.60 Torrb)76.00 Torrc)752.40 Torrd)759.00 TorrCorrect answer is option 'C'. Can you explain this answer? for Class 12 2024 is part of Class 12 preparation. The Question and answers have been prepared according to the Class 12 exam syllabus. Information about 18 g of glucose (C6H12O6) is added to 178.2 g of water. The vapour pressure of water for this aqueous solution at 100º C is - [AIEEE 2006]a)7.60 Torrb)76.00 Torrc)752.40 Torrd)759.00 TorrCorrect answer is option 'C'. Can you explain this answer? covers all topics & solutions for Class 12 2024 Exam. Find important definitions, questions, meanings, examples, exercises and tests below for 18 g of glucose (C6H12O6) is added to 178.2 g of water. The vapour pressure of water for this aqueous solution at 100º C is - [AIEEE 2006]a)7.60 Torrb)76.00 Torrc)752.40 Torrd)759.00 TorrCorrect answer is option 'C'. Can you explain this answer?.
Solutions for 18 g of glucose (C6H12O6) is added to 178.2 g of water. The vapour pressure of water for this aqueous solution at 100º C is - [AIEEE 2006]a)7.60 Torrb)76.00 Torrc)752.40 Torrd)759.00 TorrCorrect answer is option 'C'. Can you explain this answer? in English & in Hindi are available as part of our courses for Class 12.
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